Volume 24, Issue 12 (December 2024)                   Modares Mechanical Engineering 2024, 24(12): 709-716 | Back to browse issues page


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Albonasser M, Badnava H, Nourbakhsh S H. Experimental Assessment of Ductile and Shear Fracture Criteria in Stainless Steel 304 According to Hooputra Model. Modares Mechanical Engineering 2024; 24 (12) :709-716
URL: http://mme.modares.ac.ir/article-15-77859-en.html
1- Department of Mechanical Engineering
2- Department of Mechanical Engineering , badnava@bkatu.ac.ir
3- Shahrekord University
Abstract:   (262 Views)
The accurate prediction of crack initiation and growth in manufacturing processes is crucial for minimizing production costs and enhancing the reliability of components. This study focuses on integrated experimental investigation and fracture modeling approach for ductile metals, particularly addressing the mechanisms of ductile fracture and shear localization. The importance of establishing robust damage criteria for accurate reliable numerical simulations cannot be denied. Current literature reveals a significant lack of data on shear and ductile fracture criteria for materials like stainless steel alloy 304. To address this gap, a series of experimental tests was conducted to extract the necessary coefficients for these criteria. Various sample geometries were analyzed to investigate the effects of different triaxiality stress states and loading rates on fracture initiation. The triaxiality stress states were chosen within a range of 0.2 to 2 and strain rates were applied at values of 0.02 s-1, 4.5 s-1, and 30 s-1. A set of coefficients for modeling ductile and shear fracture was derived, taking into account the effects of loading rate and orientation. This research not only provides critical coefficients for fracture modeling but also supports the optimization of manufacturing processes in the automotive industry and other sectors, ultimately contributing to improved material performance and component reliability
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Article Type: Original Research | Subject: Damage Mechanics
Received: 2024/11/6 | Accepted: 2025/01/27 | Published: 2024/11/30

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